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459-47-2

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459-47-2 Usage

Uses

1-Ethyl-4-fluorobenzene is used as pharmaceutical Intermediates.

Check Digit Verification of cas no

The CAS Registry Mumber 459-47-2 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 4,5 and 9 respectively; the second part has 2 digits, 4 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 459-47:
(5*4)+(4*5)+(3*9)+(2*4)+(1*7)=82
82 % 10 = 2
So 459-47-2 is a valid CAS Registry Number.
InChI:InChI=1/C8H9F/c1-2-7-3-5-8(9)6-4-7/h3-6H,2H2,1H3

459-47-2 Well-known Company Product Price

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  • (Code)Product description
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  • Alfa Aesar

  • (L05940)  1-Ethyl-4-fluorobenzene, 97%   

  • 459-47-2

  • 5g

  • 1134.0CNY

  • Detail
  • Alfa Aesar

  • (L05940)  1-Ethyl-4-fluorobenzene, 97%   

  • 459-47-2

  • 25g

  • 4538.0CNY

  • Detail

459-47-2SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 20, 2017

Revision Date: Aug 20, 2017

1.Identification

1.1 GHS Product identifier

Product name 1-Ethyl-4-fluorobenzene

1.2 Other means of identification

Product number -
Other names 1-ETHYL-4-FLUOROBENZENE

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:459-47-2 SDS

459-47-2Relevant articles and documents

Regioselective Hydroalkylation of Vinylarenes by Cooperative Cu and Ni Catalysis

Ravn, Anne K.,Johansen, Martin B.,Skrydstrup, Troels

supporting information, (2021/12/14)

Disclosed here is a dual copper and nickel catalytic system with a silyl hydride source for promoting the linear selective hydroalkylation of vinylarenes. This carbon–carbon bond-forming protocol is applied to couple a variety of functionalized vinylarenes with alkyl halides applying a nickel(II) NNN pincer complex in the presence of an NHC-ligated copper catalyst. This combination allows for a 1 mol % loading of the nickel catalyst leading to turnover numbers of up to 72. Over 40 examples are presented, including applications for pharmaceutical diversification. Labeling experiments demonstrated the regioselectivity of the reaction and revealed that the copper catalyst plays a crucial role in enhancing the rate for formation of the reactive linear alkyl nickel complex. Overall, the presented work provides a complimentary approach for hydroalkylation reactions, whilst providing a preliminary mechanistic understanding of the cooperativity between the copper and nickel complexes.

Controlling the Lewis Acidity and Polymerizing Effectively Prevent Frustrated Lewis Pairs from Deactivation in the Hydrogenation of Terminal Alkynes

Geng, Jiao,Hu, Xingbang,Liu, Qiang,Wu, Youting,Yang, Liu,Yao, Chenfei

, p. 3685 - 3690 (2021/05/31)

Two strategies were reported to prevent the deactivation of Frustrated Lewis pairs (FLPs) in the hydrogenation of terminal alkynes: reducing the Lewis acidity and polymerizing the Lewis acid. A polymeric Lewis acid (P-BPh3) with high stability was designed and synthesized. Excellent conversion (up to 99%) and selectivity can be achieved in the hydrogenation of terminal alkynes catalyzed by P-BPh3. This catalytic system works quite well for different substrates. In addition, the P-BPh3 can be easily recycled.

Room temperature iron catalyzed transfer hydrogenation usingn-butanol and poly(methylhydrosiloxane)

Coles, Nathan T.,Linford-Wood, Thomas G.,Webster, Ruth L.

supporting information, p. 2703 - 2709 (2021/04/21)

Reduction of carbon-carbon double bonds is reported using a three-coordinate iron(ii) β-diketiminate pre-catalyst. The reaction is believed to proceedviaa formal transfer hydrogenation using poly(methylhydrosiloxane), PMHS, as the hydride donor and a bio-alcohol as the proton source. The reaction proceeds well usingn-butanol and ethanol, withn-butanol being used for substrate scoping studies. Allyl arene substrates, styrenes and aliphatic substrates all undergo reduction at room temperature. Unfortunately, clean transfer of a deuterium atom usingd-alcohol does not take place, indicating a complex catalytic mechanism. However, changing the deuterium source tod-aniline gives close to complete regioselectivity for mono-deuteration of the terminal position of the double bond. Finally, we demonstrate that efficient dehydrocoupling of alcohol and PMHS can be undertaken using the same pre-catalyst, giving high yields of H2within 30 minutes at room temperature.

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